Optics and Precision Engineering, Volume. 18, Issue 9, 1965(2010)
Design of high channel-count optical fiber filters based on sampled Bragg grating with discrete linear chirp structure
[1] [1] SUN X W. Wavelength-selective coupling of dual-core photonic crystal fiber with a hybrid light-guiding mechanism[J]. Opt. Lett., 2007,32(17):2484-2486.
[2] [2] CHAN F Y M, YASUMOTO K. Design of wavelength tunable long-period grating couplers based on asymmetric nonIinear duaI-core fibers[J]. Opt. Lett., 2007,32(23):3376-3378.
[3] [3] WANG Q, FARRELL G, YAN W. Investigation on single-mode-multimode-single-mode fiber structure [J]. J. Lightwave Technol., 2008,26(5):512-519.
[4] [4] GU X J. Wavelength-division multiplexing isolation fiber filter and light source using cascaded long-period fiber gratings[J]. Opt. Lett., 1998,23(7):509-510.
[5] [5] SAKATA H, SUZUKIi S, ITO H, et al.. Long-period fiber-grating-based bandpass filter using self-aligned absorptive core mode blocker[J]. Optical Fiber Tcchnol., 2008,14(2):93-96.
[6] [6] JIN L, WANG ZH, Fang Q, et al.. Bragg grating resonances in all-solid bandgap fibers[J]. Opt. Lett., 2007,32(18):2717-2719.
[7] [7] LIU B W, HU M L, FANG X H, et al.. Tunable bandpass filter with solid-core photonic bandgap fiber and Bragg fiber[J]. IEEE Photon. Technol. Lett., 2008,20(8):581-583.
[8] [8] NOORDEGRAAF D, SCOLARI L, L EGSGAAD J, et al.. Avoided-crossing-based liquid-crystal photonic-bandgap notch filter[J]. Opt. Lett., 2008,33(9):986-988.
[12] [12] OUELLETTE F, KRUG P A, STEPHENS T, et al.. Broadband and WDM dispersion compensation using chirped sampled fiber Bragg gratings[J]. Electron. Lett., 1995,31(11):899-901.
[13] [13] LI S Y, NGO N Q, TJIN S C, et al.. Thermally tunable narrow-band-pass filter basedon a linearly chirped fiber Bragg grating[J]. Opt. Lett., 2004,29(1):29-31.
[14] [14] LOH W H, ZHOU F Q, PAN J J, et al.. Novel designs for sampled grating based multiplexers-demultiplexers[J]. Opt. Lett., 1999,24(21):1457-1459.
[15] [15] LI H P, LI M, SHENG Y L, et al.. Advances in the design and fabrication of high channelcount fiber Bragg gratings[J]. J. Lightwave Technol., 2007,25(9):2739-2750.
[16] [16] LI M, LI H P, PAINCHAUD Y. Multi-channel notch filter based on a phase-shifted phase-only-sampled fiber Bragg grating[J]. Opt. Express, 2008,16(23):19388-19394.
[17] [17] CHEN X F, LUO Y, FAN CH CH, et al.. Analytical expression of sampled Bragg gratings with chirp in the sampling period and its application in dispersion management design in a WDM system[J]. IEEE Photon. Technol. Lett., 2000,12(8):1013-1015.
[18] [18] CHEN X F, FAN CH CH, LUO Y, et al.. Novel flat multichannel filter based on stronglychirped sampled fiber Bragg grating[J]. IEEE Photon. Technol. Lett., 2000,12(11):1501-1503.
[19] [19] DAI Y T, CHEN X F, XU X, et al.. High channel-count comb filter based on chirpedsampled fiber Bragg grating and phase shift[J]. IEEE Photon. Technol. Lett., 2005,17(5):1040-1042.
[20] [20] LAURIDSEN V C, SONDERGAARD T, VARMING P, et al.. Design of distributed feedback fiber lasers IET Conference Publications[C]. The 11th international conference on integrated optics and optical fibre communications and the 23rd European conference on optical communications. London, ROYAUME-UNI: Monographie, 1997:39-42.
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TU Xing-hua, LIU Feng-qing, XU Ning. Design of high channel-count optical fiber filters based on sampled Bragg grating with discrete linear chirp structure[J]. Optics and Precision Engineering, 2010, 18(9): 1965
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Received: Jul. 19, 2010
Accepted: --
Published Online: Dec. 7, 2010
The Author Email: Xing-hua TU (tuxh@njupt.edu.cn)
CSTR:32186.14.